纳米孔
生物传感器
石墨烯
纳米技术
材料科学
波导管
检出限
干涉测量
天文干涉仪
光子学
纳米材料
表面改性
光电子学
光学
化学
物理
色谱法
物理化学
作者
Bárbara D. Lisboa,Maria Soler,Rukmani Singh,Jesús Castro‐Esteban,Diego Peña,Aitor Mugarza,Laura M. Lechuga,César Moreno
标识
DOI:10.1021/acsanm.4c06716
摘要
Despite the outstanding progress in photonic sensor devices, a major limitation for its application as label-free biosensors for biomedical analysis lies in the surface biofunctionalization step, that is, the reliable immobilization of the biorecognition element onto the sensor surface. Here, we report the integration of bottom-up synthesized nanoporous graphene onto bimodal waveguide interferometric biosensors as an atomically precise biofunctionalization scaffold. This combination leverages the high sensitivity of bimodal waveguide interferometers and the large functional surface area of nanoporous graphene to create highly sensitive, selective, and robust biosensors for the direct immunoassay detection of C-reactive protein (CRP), an inflammatory biomarker widely used in the clinical diagnosis of infections and sepsis. The limit of detection was determined at 3 ng/mL, which is well below the clinical cutoff levels required for the diagnostic detection of CRP in patient samples. This innovative approach holds promise for transforming diagnostics, environmental monitoring, and various fields requiring precise biomolecular detection.
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